Cargando…

Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis

The generation of the observed baryon asymmetry may have taken place during the electroweak phase transition, thus involving physics testable at LHC, a scenario dubbed electroweak baryogenesis. In this paper we point out that the magnetic field which is produced in the bubbles of a first order phase...

Descripción completa

Detalles Bibliográficos
Autores principales: De Simone, Andrea, Nardini, Germano, Quiros, Mariano, Riotto, Antonio
Lenguaje:eng
Publicado: 2011
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2011/10/030
http://cds.cern.ch/record/1370025
_version_ 1780922848319111168
author De Simone, Andrea
Nardini, Germano
Quiros, Mariano
Riotto, Antonio
author_facet De Simone, Andrea
Nardini, Germano
Quiros, Mariano
Riotto, Antonio
author_sort De Simone, Andrea
collection CERN
description The generation of the observed baryon asymmetry may have taken place during the electroweak phase transition, thus involving physics testable at LHC, a scenario dubbed electroweak baryogenesis. In this paper we point out that the magnetic field which is produced in the bubbles of a first order phase transition endangers the baryon asymmetry produced in the bubble walls. The reason being that the produced magnetic field couples to the sphaleron magnetic moment and lowers the sphaleron energy; this strengthens the sphaleron transitions inside the bubbles and triggers a more effective wash out of the baryon asymmetry. We apply this scenario to the Minimal Supersymmetric extension of the Standard Model (MSSM) where, in the absence of a magnetic field, successful electroweak baryogenesis requires the lightest CP-even Higgs and the right-handed stop masses to be lighter than about 127 GeV and 120 GeV, respectively. We show that even for moderate values of the magnetic field, the Higgs mass required to preserve the baryon asymmetry is below the present experimental bound. As a consequence electroweak baryogenesis within the MSSM should be confronted on the one hand to future measurements at the LHC on the Higgs and the right-handed stop masses, and on the other hand to more precise calculations of the magnetic field produced at the electroweak phase transition.
id cern-1370025
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
record_format invenio
spelling cern-13700252023-03-15T19:12:23Zdoi:10.1088/1475-7516/2011/10/030http://cds.cern.ch/record/1370025engDe Simone, AndreaNardini, GermanoQuiros, MarianoRiotto, AntonioMagnetic Fields at First Order Phase Transition: A Threat to Electroweak BaryogenesisParticle Physics - PhenomenologyThe generation of the observed baryon asymmetry may have taken place during the electroweak phase transition, thus involving physics testable at LHC, a scenario dubbed electroweak baryogenesis. In this paper we point out that the magnetic field which is produced in the bubbles of a first order phase transition endangers the baryon asymmetry produced in the bubble walls. The reason being that the produced magnetic field couples to the sphaleron magnetic moment and lowers the sphaleron energy; this strengthens the sphaleron transitions inside the bubbles and triggers a more effective wash out of the baryon asymmetry. We apply this scenario to the Minimal Supersymmetric extension of the Standard Model (MSSM) where, in the absence of a magnetic field, successful electroweak baryogenesis requires the lightest CP-even Higgs and the right-handed stop masses to be lighter than about 127 GeV and 120 GeV, respectively. We show that even for moderate values of the magnetic field, the Higgs mass required to preserve the baryon asymmetry is below the present experimental bound. As a consequence electroweak baryogenesis within the MSSM should be confronted on the one hand to future measurements at the LHC on the Higgs and the right-handed stop masses, and on the other hand to more precise calculations of the magnetic field produced at the electroweak phase transition.The generation of the observed baryon asymmetry may have taken place during the electroweak phase transition, thus involving physics testable at LHC, a scenario dubbed electroweak baryogenesis. In this paper we point out that the magnetic field which is produced in the bubbles of a first order phase transition endangers the baryon asymmetry produced in the bubble walls. The reason being that the produced magnetic field couples to the sphaleron magnetic moment and lowers the sphaleron energy/ this strengthens the sphaleron transitions inside the bubbles and triggers a more effective wash out of the baryon asymmetry. We apply this scenario to the Minimal Supersymmetric extension of the Standard Model (MSSM) where, in the absence of a magnetic field, successful electroweak baryogenesis requires the lightest CP-even Higgs and the right-handed stop masses to be lighter than about 127 GeV and 120 GeV, respectively. We show that even for moderate values of the magnetic field, the Higgs mass required to preserve the baryon asymmetry is below the present experimental bound. As a consequence electroweak baryogenesis within the MSSM should be confronted on the one hand to future measurements at the LHC on the Higgs and the right-handed stop masses, and on the other hand to more precise calculations of the magnetic field produced at the electroweak phase transition.arXiv:1107.4317CERN-PH-TH-2011-177UAB-FT-695ULB-TH-11-18CERN-PH-TH-2011-177UAB-FT-695ULB-TH-11-18oai:cds.cern.ch:13700252011-07-22
spellingShingle Particle Physics - Phenomenology
De Simone, Andrea
Nardini, Germano
Quiros, Mariano
Riotto, Antonio
Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title_full Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title_fullStr Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title_full_unstemmed Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title_short Magnetic Fields at First Order Phase Transition: A Threat to Electroweak Baryogenesis
title_sort magnetic fields at first order phase transition: a threat to electroweak baryogenesis
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1088/1475-7516/2011/10/030
http://cds.cern.ch/record/1370025
work_keys_str_mv AT desimoneandrea magneticfieldsatfirstorderphasetransitionathreattoelectroweakbaryogenesis
AT nardinigermano magneticfieldsatfirstorderphasetransitionathreattoelectroweakbaryogenesis
AT quirosmariano magneticfieldsatfirstorderphasetransitionathreattoelectroweakbaryogenesis
AT riottoantonio magneticfieldsatfirstorderphasetransitionathreattoelectroweakbaryogenesis